Salt-bridge networks within globular and disordered proteins: characterizing trends for designable interactions

S Basu, D Mukharjee - Journal of Molecular Modeling, 2017 - Springer
Journal of Molecular Modeling, 2017Springer
There has been considerable debate about the contribution of salt bridges to the
stabilization of protein folds, in spite of their participation in crucial protein functions. Salt
bridges appear to contribute to the activity–stability trade-off within proteins by bringing high-
entropy charged amino acids into close contacts during the course of their functions. The
current study analyzes the modes of association of salt bridges (in terms of networks) within
globular proteins and at protein–protein interfaces. While the most common and trivial type …
Abstract
There has been considerable debate about the contribution of salt bridges to the stabilization of protein folds, in spite of their participation in crucial protein functions. Salt bridges appear to contribute to the activity–stability trade-off within proteins by bringing high-entropy charged amino acids into close contacts during the course of their functions. The current study analyzes the modes of association of salt bridges (in terms of networks) within globular proteins and at protein–protein interfaces. While the most common and trivial type of salt bridge is the isolated salt bridge, bifurcated salt bridge appears to be a distinct salt-bridge motif having a special topology and geometry. Bifurcated salt bridges are found ubiquitously in proteins and interprotein complexes. Interesting and attractive examples presenting different modes of interaction are highlighted. Bifurcated salt bridges appear to function as molecular clips that are used to stitch together large surface contours at interacting protein interfaces. The present work also emphasizes the key role of salt-bridge-mediated interactions in the partial folding of proteins containing long stretches of disordered regions. Salt-bridge-mediated interactions seem to be pivotal to the promotion of “disorder-to-order” transitions in small disordered protein fragments and their stabilization upon binding. The results obtained in this work should help to guide efforts to elucidate the modus operandi of these partially disordered proteins, and to conceptualize how these proteins manage to maintain the required amount of disorder even in their bound forms. This work could also potentially facilitate explorations of geometrically specific designable salt bridges through the characterization of composite salt-bridge networks.
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